Isosmotic Modulation of Cell Volume and Intracellular Ion Activities During Stimulation of Single Exocrine Cells
Overview
Authors
Affiliations
Stimulation of salivary secretion is associated with a rise of [Ca2+]i in acinar cells. We examined the osmotic and ionic consequences of activation of Ca(2+)-dependent K+ and Cl- channels, by simultaneous optical determinations of cell volume and [Ca2+]i, [Cl-]i or [Na+]i during muscarinic stimulation of single salivary acinar cells, using a differential interference contrast (DIC)-fluorescence microscope. Carbachol caused a rapid rise of [Ca2+]i, as well as a substantial cell shrinkage. Despite variability in the level and kinetics of the subsequent sustained phase of the [Ca2+]i response, cell volume was correlated with [Ca2+]i in all cases. Elevated [Ca2+]i was both necessary and sufficient to cause these changes in cell volume. The proposition that changes in cell volume reflected changes in cell solute content was confirmed by simultaneously measuring [Cl-]i and cell volume. Simultaneous determinations of cell volume and [Na+]i indicated that the initial cell shrinkage was due entirely to K+ and Cl- efflux. Subsequent to the initial shrinkage, [Na+]i rose to high levels, primarily due to activation of Na+/H+ exchange. Thus, modulation of ion transport activities under isosmotic conditions results in substantial changes in cell solute content and cell volume. Subsequent to the early Ca(2+)-induced changes in these parameters, other transporters become active, but it is unclear what signals their activation. Cell swelling by osmotic dilution of the bath resulted in compensatory cell shrinkage (RVD) which was sensitive to K+ and Cl- gradients. Nevertheless, a rise of [Ca2+]i was not necessary for RVD. Osmotic shrinkage and/or cell acidification were insufficient to activate Na+ influx.(ABSTRACT TRUNCATED AT 250 WORDS)
PAR-2-activated secretion by airway gland serous cells: role for CFTR and inhibition by .
McMahon D, Carey R, Kohanski M, Adappa N, Palmer J, Lee R Am J Physiol Lung Cell Mol Physiol. 2021; 320(5):L845-L879.
PMID: 33655758 PMC: 8174824. DOI: 10.1152/ajplung.00411.2020.
Mola M, Sparaneo A, Gargano C, Spray D, Svelto M, Frigeri A Glia. 2015; 64(1):139-54.
PMID: 26413835 PMC: 4905710. DOI: 10.1002/glia.22921.
Hansen A, Galtung H Pflugers Arch. 2006; 453(6):787-96.
PMID: 17021794 DOI: 10.1007/s00424-006-0158-2.
Falktoft B, Lambert I J Membr Biol. 2005; 201(2):59-75.
PMID: 15630544 DOI: 10.1007/s00232-004-0705-6.
Regulation of the cellular content of the organic osmolyte taurine in mammalian cells.
Lambert I Neurochem Res. 2004; 29(1):27-63.
PMID: 14992263 DOI: 10.1023/b:nere.0000010433.08577.96.